Recent Advances and Perspectives on Single‐Crystalline Layered Oxide Cathodes for Na‐Ion Batteries

ABSTRACT Layered transition metal oxides (Na x TMO 2 ) are regarded as promising cathode materials for Na‐ion batteries because of their high capacity, compositional flexibility, and cost‐effectiveness. However, conventional polycrystalline architectures undergo pronounced performance degradation during long‐term cycling, mainly because anisotropic lattice evolution induces intergranular microcracking, which subsequently promotes electrolyte penetration, interfacial side reactions, and structural deterioration. Single crystallization has emerged as an important particle‐engineering strategy that improves the mechanical and interfacial stability of Na x TMO 2 by reducing internal grain boundaries. This review provides a systematic and comprehensive overview of recent advances in single‐crystalline layered oxide cathodes. First, the structural characteristics and capacity–kinetics trade‐offs of O3‐ and P2‐type frameworks are analyzed, linking their lattice‐dependent evolution to the advantages and remaining limitations of single crystallization. Subsequently, we systematically elaborate the main synthetic routes of single–crystalline cathodes, as well as the mechanisms whereby single crystallization modulates their structural stability and electrochemical properties. Advanced modification strategies for single–crystalline cathodes are also summarized. Finally, the discussion is extended to electrode fabrication, full‐cell applications, and practical industrial production. The remaining failure mechanisms, challenges in synthesis control, and barriers to practical implementation are examined, and perspectives are provided for developing long‐life single‐crystalline cathodes with commercial potential.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-10
DOI
https://doi.org/10.1002/adfm.78198
Primary Topic
Advancements in Battery Materials
Type
article
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Recent Advances and Perspectives on Single‐Crystalline Layered Oxide Cathodes for Na‐Ion Batteries

Chaojiang Niu, Feixiang Ding, Ziqi Tang, Xiao Zhang et al.
Advanced Functional Materials
Advancements in Battery Materials
article

Recent Advances and Perspectives on Single‐Crystalline Layered Oxide Cathodes for Na‐Ion Batteries

Chaojiang Niu, Feixiang Ding, Ziqi Tang, Xiao Zhang, Zongyu Sun
article en

Abstract

ABSTRACT Layered transition metal oxides (Na x TMO 2 ) are regarded as promising cathode materials for Na‐ion batteries because of their high capacity, compositional flexibility, and cost‐effectiveness. However, conventional polycrystalline architectures undergo pronounced performance degradation during long‐term cycling, mainly because anisotropic lattice evolution induces intergranular microcracking, which subsequently promotes electrolyte penetration, interfacial side reactions, and structural deterioration. Single crystallization has emerged as an important particle‐engineering strategy that improves the mechanical and interfacial stability of Na x TMO 2 by reducing internal grain boundaries. This review provides a systematic and comprehensive overview of recent advances in single‐crystalline layered oxide cathodes. First, the structural characteristics and capacity–kinetics trade‐offs of O3‐ and P2‐type frameworks are analyzed, linking their lattice‐dependent evolution to the advantages and remaining limitations of single crystallization. Subsequently, we systematically elaborate the main synthetic routes of single–crystalline cathodes, as well as the mechanisms whereby single crystallization modulates their structural stability and electrochemical properties. Advanced modification strategies for single–crystalline cathodes are also summarized. Finally, the discussion is extended to electrode fabrication, full‐cell applications, and practical industrial production. The remaining failure mechanisms, challenges in synthesis control, and barriers to practical implementation are examined, and perspectives are provided for developing long‐life single‐crystalline cathodes with commercial potential.

Advanced Functional Materials
Zhengzhou University (CN), Institute of Metallurgy (RU)
Industry, innovation and infrastructure
Openalex Percentile: Top 20%
Advancements in Battery Materials
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